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Using microscopic video data measures for driver behavior analysis during adverse winter weather: opportunities and challenges

机译:在冬季恶劣天气下使用微观视频数据进行驾驶员行为分析:机遇与挑战

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This paper presents a driver behavior analysis using microscopic video data measures including vehicle speed, lane-changing ratio, and time to collision. An analytical framework was developed to evaluate the effect of adverse winter weather conditions on highway driving behavior based on automated (computer) and manual methods. The research was conducted through two case studies. The first case study was conducted to evaluate the feasibility of applying an automated approach to extracting driver behavior data based on 15 video recordings obtained in the winter 2013 at three different locations on the Don Valley Parkway in Toronto, Canada. A comparison was made between the automated approach and manual approach, and issues in collecting data using the automated approach under winter conditions were identified. The second case study was based on high quality data collected in the winter 2014, at a location on Highway 25 in Montreal, Canada. The results demonstrate the effectiveness of the automated analytical framework in analyzing driver behavior, as well as evaluating the impact of adverse winter weather conditions on driver behavior. This approach could be applied to evaluate winter maintenance strategies and crash risk on highways during adverse winter weather conditions.
机译:本文介绍了使用微观视频数据量度的驾驶员行为分析,包括车速,变道率和碰撞时间。基于自动(计算机)和手动方法,开发了一个分析框架来评估不利的冬季天气条件对高速公路驾驶行为的影响。该研究是通过两个案例研究进行的。进行了第一个案例研究,以评估基于2013年冬季在加拿大多伦多Don Valley Parkway的三个不同地点获得的15条视频记录,采用自动方法提取驾驶员行为数据的可行性。在自动方法和手动方法之间进行了比较,并确定了在冬季条件下使用自动方法收集数据的问题。第二个案例研究基于2014年冬季在加拿大蒙特利尔25号高速公路上的某个位置收集的高质量数据。结果证明了自动分析框架在分析驾驶员行为以及评估不利的冬季天气条件对驾驶员行为的影响方面的有效性。这种方法可以用于评估冬季维护策略以及在不利的冬季天气条件下高速公路的撞车风险。

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